RNF43 p.G659fs 通过 PI3K/AKT/mTOR 信号通路和 HLA-E 上调导致 MSI-high 结直肠癌中 NK 细胞功能障碍
RNF43 p.G659fs leads to natural killer cell dysfunction in MSI-high colorectal cancer through PI3K/AKT/mTOR signaling and HLA-E up-regulation.
CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:Engineering Diselenide-IR780 Homodimeric Nanoassemblies with Enhanced Photodynamic and Immunotherapeutic Effects for Triple-Negative Breast Cancer Treatment.
Engineering Diselenide-IR780 Homodimeric Nanoassemblies with Enhanced Photodynamic and Immunotherapeutic Effects for Triple-Negative Breast Cancer Treatment.
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光动力疗法(PDT)已成为一种高效的非侵入性肿瘤治疗方法。然而,有机小分子光敏剂往往存在疏水性、光稳定性差和聚集诱导猝灭等缺陷,限制了其应用。通常,载体辅助药物递送系统是解决上述障碍的常见策略,但额外的载体材料可能增加潜在生物毒性的风险。随后,易于制备且载药能力高的无载体药物递送系统被提出作为开发疏水性药物临床应用的潜在策略。
在此,我们合理设计了三种基于IR780的无载体纳米系统,由碳/二硫键/二硒键共轭的IR780基同源二聚体形成。基于IR780的同源二聚体可自组装形成纳米颗粒(DC-NP、DS-NP、DSe-NP),并表现出比游离IR780更高的活性氧生成能力和光稳定性,其中DSe-NP在808 nm激光照射下表现最佳,对4T1细胞产生最强的细胞毒性。
同时,DSe-NP的谷胱甘肽消耗能力增强了其PDT效果,进而诱导4T1细胞过度氧化应激,通过进一步增强免疫原性细胞死亡提高抗肿瘤疗效。在荷瘤小鼠中,DSe-NP显示出明显的肿瘤部位蓄积,明显抑制了肿瘤生长和转移,并通过有效诱导树突状细胞成熟、激活T淋巴细胞和NK 细胞增强了免疫效应。
总之,我们的研究提出了一种基于IR780的无载体纳米递送系统,用于PDT与免疫治疗的联合,并通过无载体药物递送系统的方法拓展了有机小分子光敏剂的应用。
Photodynamic therapy (PDT) has emerged as an efficient approach for non-invasive cancer treatment.
However, organic small-molecule photosensitizers are often associated with defects in hydrophobicity, poor photostability, and aggregation-caused quenching, which limit their application. Usually, the carrier-assisted drug delivery system is a common strategy to solve the above obstacles, but additional carrier material could increase the risk of potential biological toxicity.
The carrier-free drug delivery system with easy preparation and high drug-loading capability is proposed subsequently as a potential strategy to develop the clinical use of hydrophobic drugs.
Herein, we rationally designed three IR780-based carrier-free nanosystems formed by carbon/disulfide/diselenide bond conjugated IR780-based homodimers. The IR780-based homodimers could self-assemble to form nanoparticles (DC-NP, DS-NP, DSe-NP) and exhibited higher reactive oxygen species generation capability and photostability than free IR780, in which DSe-NP with 808 nm laser irradiation performed best and resulted in the strongest cytotoxicity to 4T1 cells. Meanwhile, the glutathione consumption ability of DSe-NP boosted its PDT effect and then induced excessive oxidative stress of 4T1 cells, increasing antitumor efficacy by enhancing immunogenic cell death further.
In tumor-bearing mice, DSe-NP displayed obvious tumor site accumulation, which obviously inhibited tumor growth and metastasis, and enhanced the immunological effect by effectively inducing dendritic cells to mature and activating T lymphocytes and natural killer cells. In summary, our study presented an IR780-based carrier-free nanodelivery system for a combination of PDT and immunity therapy and established expanding the application of organic small-molecule photosensitizers by an approach of carrier-free drug delivery system.
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